2

Lets say i have a list to sort of

list_values = ['key3', 'key0', 'key1', 'key4', 'key2']

And a order dict of

ordered_dict = OrderedDict([('key4', 0), ('key1', 1), ('key2', 2), ('key0', 3), ('key3', 4)])

How can i sort the list_values using the ordered_dict key accordingly?

i.e:- sorted_list = ['key4', 'key1', 'key2', 'key0', 'key3']

EDIT: Since almost all of the answers solves the problem, what is the most suitable and perfect pythonic way of doing this?

  • 1
    Re:Edit. Generally, non-lambda solutions are preferred. I could go into a breakdown of each solution, but it would be more convincing for you if you could just time the solutions on your data and accept the fastest one. – coldspeed Jan 21 at 20:57
  • oh, yeah sure.. – Arduino_Sentinel Jan 21 at 20:59
  • Do note that list.sort is an in-place method, which is faster but also sorts the data in-place, so make sure to reset the list. – coldspeed Jan 21 at 21:00
4

Call list.sort, passing a custom key:

list_values.sort(key=ordered_dict.get)    
list_values
# ['key4', 'key1', 'key2', 'key0', 'key3']

Alternatively, the non-in-place version is done using,

sorted(list_values, key=ordered_dict.get)
# ['key4', 'key1', 'key2', 'key0', 'key3']
  • 2
    Well, this is the best answer so far. btw, in my case i will go with non-in-place option since i want to store the returned sorted list. Thank you @coldspeed – Arduino_Sentinel Jan 21 at 21:36
1

If we assume that list is subset of dict:

list_values = ['key3', 'key1']

ordered_dict = OrderedDict([('key4', 0), ('key1', 1), ('key2', 2), ('key0', 3), ('key3', 4)])

output = [v for v in ordered_dict if v in list_values]

print(output)

['key1', 'key3']

Example 2:

list_values = ['key3', 'key0', 'key1', 'key4', 'key2']

ordered_dict = OrderedDict([('key4', 0), ('key1', 1), ('key2', 2), ('key0', 3), ('key3', 4)])

output = [v for v in ordered_dict if v in list_values]

print(output)

['key4', 'key1', 'key2', 'key0', 'key3']
-1

You can sort the dict items with a key function that returns the second item, which is the value of each dict entry, as the key which the sorting will be based on:

[k for k, _ in sorted(ordered_dict.items(), key=lambda t: t[1])]

This returns:

['key4', 'key1', 'key2', 'key0', 'key3']

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